标签:
Given an integer n, count the total number of digit 1 appearing in all non-negative integers less than or equal to n.
For example:
Given n = 13,
Return 6, because digit 1 occurred in the following numbers: 1, 10, 11, 12, 13.
[思路]
reference: https://leetcode.com/discuss/44281/4-lines-o-log-n-c-java-python
intuitive: 每10个数, 有一个个位是1, 每100个数, 有10个十位是1, 每1000个数, 有100个百位是1. 做一个循环, 每次计算单个位上1得总个数(个位,十位, 百位).
例子:
以算百位上1为例子: 假设百位上是0, 1, 和 >=2 三种情况:
case 1: n=3141092, a= 31410, b=92. 计算百位上1的个数应该为 3141 *100 次.
case 2: n=3141192, a= 31411, b=92. 计算百位上1的个数应该为 3141 *100 + (92+1) 次.
case 3: n=3141592, a= 31415, b=92. 计算百位上1的个数应该为 (3141+1) *100 次.
以上三种情况可以用 一个公式概括:
(a + 8) / 10 * m + (a % 10 == 1) * (b + 1);[CODE]
public class Solution {
public int countDigitOne(int n) {
int ones = 0;
for (long m = 1; m <= n; m *= 10) {
long a = n/m, b = n%m;
ones += (a + 8) / 10 * m;
if(a % 10 == 1) ones += b + 1;
}
return ones;
}
}版权声明:本文为博主原创文章,未经博主允许不得转载。
leetcode 233: Number of Digit One
标签:
原文地址:http://blog.csdn.net/xudli/article/details/46798619
